• 제목/요약/키워드: Calibration process

검색결과 759건 처리시간 0.026초

응력상태를 고려한 사질토지반에 관입된 말뚝의 극한수평지지력 분석 및 평가 (Estimation of Pile Ultimate Lateral Load Capacity in Sand Considering Lateral Stress Effect)

  • 이준환;백규호;김대홍;황성욱;김민기
    • 한국지반공학회논문집
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    • 제23권4호
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    • pp.161-167
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    • 2007
  • 본 연구에서는 수평하중을 받는 말뚝을 대상으로 응력상태에 따른 극한수평지지력의 변화추이를 분석하였으며, 이를 토대로 다양한 응력상태를 고려할 수 있는 극한수평지지력의 평가방법을 제안하였다. 이를 통해 기존의 수평지지력 평가방법에 있어 제한되었던 응력효과의 고려가 가능하게 되었으며, 지반조건 및 시공조건 등에 따른 지반응력 변화를 보다 효과적으로 반영할 수 있을 것으로 판단된다. 이를 위해 모래질 지반을 대상으로 모형토조에서 수행된 말뚝의 수평재하시험결과가 사용되었으며, 토조실험에는 다양한 범위의 응력상태가 고려되었다. 분석결과, 말뚝의 극한수평지지력은 수직응력 및 수평응력 모두에 영향을 받는 것으로 나타났으나, 수평응력에 따라 더욱 민감하게 변화하고 있음을 알 수 있었다. 극한수평지지지력이 발휘되는 변위량의 수준은 지반조건에 따라 달랐으며, 상대밀도가 50%범위에서는 상대변위량 14%내외, 86%내외에서는 18-25%정도의 상대변위량을 나타내었다. 본 연구결과에 근거하여 극한수평지지력 평가를 위한 수평토압보정계수가 제안되었으며, 제안된 평가법에 의한 예측치는 다양한 응력조건에 대해 실측치와 유사한 결과를 나타내었다.

Persistence Study of Thiamethoxam and Its Metabolite in Kiwifruit for Establishment of Import Tolerance

  • Il Kyu Cho;Gyeong Hwan Lee;Woo Young Cho;Yun-Su Jeong;Danbi Kim;Kil Yong Kim;Gi-Woo Hyoung;Chul Hong Kim
    • 한국환경농학회지
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    • 제41권4호
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    • pp.355-364
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    • 2022
  • BACKGROUND: Pre-harvest interval and decline pattern of thiamethoxam were determined in kiwifruit using liquid chromatography-tandem mass spectrometry (LCMS/MS). The study was carried out to propose import tolerance using OECD maximum residue limit (MRL) calculator for the export promotion of kiwifruit to Taiwan. METHODS AND RESULTS: The thiamethoxam residue in kiwifruit was determined by using the LC-TriQ-MS/MS with the analytical process to set up the import tolerance under greenhouse conditions for Taiwan. Excellent linearity was observed for all of the analytes with a determination coefficient (R2)≥0.99. The limit of quantification was determined to be 0.01 mg/kg for both thiamethoxam and clothianidin in kiwifruit. Linearity was determined from the co-efficient of determinants (R2) obtained from the seven-point calibration curve. The standard calibration curve showed as follows; 1) Site 1 (Gimje): y = 944,406X + 1,583 (R2=0.9995), 2) Site 2 (Goheung): y = 1,356,205X + 934 (R2=0.9983), and 3) Site 3 (Jangheung): y = 1,239,937X - 3,090 (R2=0.9908). The residue of thiamethoxam in the kiwifruit for three decline trials showed the range of 0.35 to 0.56 mg/kg in site 1 (Gimje), 0.24 to 0.55 mg/kg in site 2 (Goheung), and 0.28 to 0.42 mg/kg in site 3 (Jangheung), respectively. However, clothianidin was not detected in all of the treatments. The maximum residual amounts (decline) in the samples, sprayed according to the safe-use standard for thiamethoxam 10% WG in kiwifruit (30 days before harvest, 3 sprays every 7 days) were 0.56 mg/kg in site 1, 0.55 mg/kg in site 2, and 0.42 mg/kg in site 3, respectively. CONCLUSION(S): The import tolerance (IT) of thiamethoxam for kiwifruit may be proposed to be 0.9 mg/kg by using the OECD MRL calculator.

어안렌즈를 이용한 비전 기반의 이동 로봇 위치 추정 및 매핑 (Vision-based Mobile Robot Localization and Mapping using fisheye Lens)

  • 이종실;민홍기;홍승홍
    • 융합신호처리학회논문지
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    • 제5권4호
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    • pp.256-262
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    • 2004
  • 로봇이 자율주행을 하는데 있어 중요한 요소는 로봇 스스로 위치를 추정하고 동시에 주위 환경에 대한 지도를 작성하는 것이다. 본 논문에서는 어안렌즈를 이용한 비전 기반 위치 추정 및 매핑 알고리즘을 제안한다. 로봇에 어안렌즈가 부착된 카메라를 천정을 바라볼 수 있도록 부착하여 스케일 불변 특징을 갖는 고급의 영상 특징을 구하고, 이 특징들을 맵 빌딩과 위치 추정에 이용하였다. 전처리 과정으로 어안렌즈를 통해 입력된 영상을 카메라 보정을 행하여 축방향 왜곡을 제거하고 레이블링과 컨벡스헐을 이용하여 보정된 영상에서 천정영역과 벽영역으로 분할한다. 최초 맵 빌딩시에는 분할된 영역에 대해 특징점을 구하고 맵 데이터베이스에 저장한다. 맵 빌딩이 종료될 때까지 연속하여 입력되는 영상에 대해 특징점들을 구하고 맵과 매칭되는 점들을 찾고 매칭되지 않은 점들에 대해서는 기존의 맵에 추가하는 과정을 반복한다. 위치 추정은 맵 빌딩 과정과 맵 상에서 로봇의 위치를 찾는데 이용된다. 로봇의 위치에서 구해진 특징점들은 로봇의 실제 위치를 추정하기 위해 기존의 맵과 매칭을 행하고 동시에 기존의 맵 데이터베이스는 갱신된다. 제안한 방법을 적용하면 50㎡의 영역에 대한 맵 빌딩 소요 시간은 2분 이내, 위치 추정시 위치 정확도는 ±13cm, 로봇의 자세에 대한 각도 오차는 ±3도이다.

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스케일 불변 특징을 이용한 이동 로봇의 위치 추정 및 매핑 (Mobile Robot Localization and Mapping using Scale-Invariant Features)

  • 이종실;신동범;권오상;이응혁;홍승홍
    • 전기전자학회논문지
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    • 제9권1호
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    • pp.7-18
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    • 2005
  • 로봇이 자율주행을 하는데 있어 중요한 요소는 로봇 스스로 위치를 추정하고 동시에 주위 환경에 대한 지도를 작성하는 것이다 본 논문에서는 스케일 불변 특정을 이용한 비전 기반 위치 추정 및 매핑 알고리즘을 제안한다. 로봇에 어안렌즈가 부착된 카메라를 천정을 바라볼 수 있도록 부착하여 스케일 불변 특정을 갖는 고급의 영상 특정을 구하여 맹 빌딩과 위치 추정을 수행한다. 먼저, 전처리 과정으로 어안렌즈를 통해 입력된 영상을 카메라 보정을 행하여 축방향 왜곡을 제거하고 레이블링과 컨벡스헐을 적용하여 천정영역과 벽영역으로 분할한다 최초 맵 빌딩시에는 분할된 영역에 대해 특정점을 구하고 맵 데이터베이스에 저장한다. 맵 빌딩이 종료될 때까지 연속하여 입력되는 영상에 대해 특정점들을 구하고 이미 작성된 맵과 매칭되는 점들을 찾고 매칭되지 않은 점들에 대해서는 기존의 맴에 추가하는 과정을 반복한다. 위치 추정은 맵 빌딩과정에서 매칭되는 점들을 찾을 때 동시에 수행되어 진다. 그리고 임의의 위치에서 기존의 작성된 맵과 매칭되는 점들을 찾음으로서 위치 추정이 행해지며 동시에 기존의 맵 데이터베이스의 특정점들을 갱신하게 된다. 제안한 방법은 $50m^2$의 영역에 대해 맵 빌딩을 2 분내에 수행할 수 있었으며, 위치의 정확도는 ${\pm}13cm$, 위치에 대한 로봇의 자세(각도)는 ${\pm}3$도의 오차를 갖는다.

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Transferring Calibrations Between on Farm Whole Grain NIR Analysers

  • Clancy, Phillip J.
    • 한국근적외분광분석학회:학술대회논문집
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    • 한국근적외분광분석학회 2001년도 NIR-2001
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    • pp.1210-1210
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    • 2001
  • On farm analysis of protein, moisture and oil in cereals and oil seeds is quickly being adopted by Australian farmers. The benefits of being able to measure protein and oil in grains and oil seeds are several : $\square$ Optimize crop payments $\square$ Monitor effects of fertilization $\square$ Blend on farm to meet market requirements $\square$ Off farm marketing - sell crop with load by load analysis However farmers are not NIR spectroscopists and the process of calibrating instruments has to the duty of the supplier. With the potential number of On Farm analyser being in the thousands, then the task of calibrating each instrument would be impossible, let alone the problems encountered with updating calibrations from season to season. As such, NIR technology Australia has developed a mechanism for \ulcorner\ulcorner\ulcorner their range of Cropscan 2000G NIR analysers so that a single calibration can be transferred from the master instrument to every slave instrument. Whole grain analysis has been developed over the last 10 years using Near Infrared Transmission through a sample of grain with a pathlength varying from 5-30mm. A continuous spectrum from 800-1100nm is the optimal wavelength coverage fro these applications and a grating based spectrophotometer has proven to provide the best means of producing this spectrum. The most important aspect of standardizing NIB instruments is to duplicate the spectral information. The task is to align spectrum from the slave instruments to the master instrument in terms of wavelength positioning and then to adjust the spectral response at each wavelength in order that the slave instruments mimic the master instrument. The Cropscan 2000G and 2000B Whole Grain Analyser use flat field spectrographs to produce a spectrum from 720-1100nm and a silicon photodiode array detector to collect the spectrum at approximately 10nm intervals. The concave holographic gratings used in the flat field spectrographs are produced by a process of photo lithography. As such each grating is an exact replica of the original. To align wavelengths in these instruments, NIR wheat sample scanned on the master and the slave instruments provides three check points in the spectrum to make a more exact alignment. Once the wavelengths are matched then many samples of wheat, approximately 10, exhibiting absorbances from 2 to 4.5 Abu, are scanned on the master and then on each slave. Using a simple linear regression technique, a slope and bias adjustment is made for each pixel of the detector. This process corrects the spectral response at each wavelength so that the slave instruments produce the same spectra as the master instrument. It is important to use as broad a range of absorbances in the samples so that a good slope and bias estimate can be calculated. These Slope and Bias (S'||'&'||'B) factors are then downloaded into the slave instruments. Calibrations developed on the master instrument can then be downloaded onto the slave instruments and perform similarly to the master instrument. The data shown in this paper illustrates the process of calculating these S'||'&'||'B factors and the transfer of calibrations for wheat, barley and sorghum between several instruments.

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벼 작물생육모형 국내 도입 활용과 앞으로의 연구 방향 (History and Future Direction for the Development of Rice Growth Models in Korea)

  • 김준환;상완규;신평;백재경;조정일;서명철
    • 한국농림기상학회지
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    • 제21권3호
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    • pp.167-174
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    • 2019
  • 작물 생육모형은 기존의 경험적 작물모형과는 달리 벼의 생장과정을 모의 할 수 있는 장점이 있다. 이러한 작물생육 모형들은 80년대 후반부터 적극적으로 국내도입이 이루어 졌다. 유럽에서 개발된 MACROS로 부터 시작하여 이후 Oryza1 및 Oryza2000 모형과 북미에서 개발된 DSSAT 계열의 모형인 CERES-RICE 모형을 도입하게 되었다. 각각의 모형들은 최초에는 단순히 품종수 적합 후 특정지역에의 수량을 모의하는데 활용되었으나 2000년대에 이르러서는 국내에 적합한 작물모형으로 발전시킬 수 있는 단계에 이르게 되었다. 그러나, 작물생육모형을 기후변화 영향평가를 위한 용도로 주로 사용하였고 실용적인 수준에서의 활용은 미미하였다. 일부 농가 적용을 위한 시도가 있었으나 널리 활용되지는 못하였다. 이러한 활용상의 문제점은 기상자료의 공간해상도가 문제가 가장 크며, 그 다음으로는 각 지역별이 품종에 대한 품종모수 자료가 부족하기 때문이다. 이러한 활용상의 문제점을 극복하기 위해서는 기상관측의 공간해상력을 높이기 위한 관측소의 확대 또는 공간 내삽법이 필요할 것으로 생각된다. 또한 신품종이 일정 재배면적 이상 확대될 경우 이에 대해 품종모수를 적합할 제도적 기술적 방법이 필요하다. 작물모형의 활용 확대를 위해서는 기상 또는 토양 분야와도 연결이 필요하다. 이를 위해서는 군락의 증산 속도와 토양모형에 정보가 필요하며 이는 군락 광합성 관련 부분과 토양 특성에 대해서 새로운 접근이 필요함을 의미한다.

면류에서 HPLC를 이용한 데옥시니발레놀 분석법의 검증과 불확도 산정 (Single Laboratory Validation and Uncertainty Estimation of a HPLC Analysis Method for Deoxynivalenol in Noodles)

  • 옥현이;장현주;강영운;김미혜;전향숙
    • 한국식품위생안전성학회지
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    • 제26권2호
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    • pp.142-149
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    • 2011
  • 본 연구에서는 면류에서 면역친화컬럼을 이용한 데옥시니발레놀의 HPLC분석법을 검증하고, 분석과정에서 발생될 수 있는 불확도를 GUM 지침에 따라 측정하였다. 검출한 계와 정량한계는 7.5 ${\mu}g$/kg과 18.8 ${\mu}g$/kg이었고 검량선은 20~500 ${\mu}g$/kg 농도범위 에서 0.9999의 높은 상관성을 보였다. 대표적인 밀 가공품인 건면과 라면에 데옥시니 발레놀을 200 ${\mu}g$/kg과 500 ${\mu}g$/kg을 첨가하여 회수율과 반복성올 측정한 결과, 건면에서는 $82{\pm}2.7%$$87{\pm}1.3%$의 결과를 얻었고, 라면에서는 $97{\pm}1.6%$$91{\pm}12.0%$로 측정되었다. 한편, 불확도 측정을 위한 첫 단계로, 분석과정에서의 불확도 요인은 시료량 측정, 최종 시료부피, 보관표준용액, 작업표준용액, 표준용액, 기기, 매질, 검량선 작성으로 구분하였다. 불확도 요인의 구성요인은 저울의 안정성, 분해능, 재현성, 표준물질의 순도, 분자량, 농도, 표준용액 희석, 검량선, 회수율 및 분석기기의 재현성 풍이 작용하였다. 건면과 라면에 데옥시니발레놀을 200과 500 ${\mu}g$/kg을 첨가하여 분석한 결과 건면에서는 $163.8{\pm}52.1\;{\mu}g$/kg, $435.2{\pm}91.6\;{\mu}g$/kg으로 측정되었고 라면에서는 $194.3{\pm}33.0\;{\mu}g$/kg, $453.2{\pm}91.1\;{\mu}g$/kg으로 측정되었다. 확장불확도는 합성표준불확도에 포함인자(k=2, 신뢰수준 95%)를 곱하여 산출하였다. 건면과 라면에서 데옥시니발레놀을 분석함에 있어 불확도에 영향을 주는 주요인자는 시료의 회수율과 검량선 작성인 것으로 파악되었다. 따라서 면류 시료에서 데옥시니발레놀 것으로 분석의 정밀성을 높이기 위해서는 회수율과 검량선 작성에 영향을 끼칠 수 있는 분석과정을 확인하고 오차를 최소화 할 수 있는 방안을 모색해야 할 것으로 사료된다.

측정기반 최악실행시간 분석 기법을 이용한 AUTOSAR 호환 승용디젤엔진제어기의 실시간 성능 검증에 관한 연구 (Timing Verification of AUTOSAR-compliant Diesel Engine Management System Using Measurement-based Worst-case Execution Time Analysis)

  • 박인석;강은환;정재성;손정원;선우명호;이강석;이우택;연제명;원동훈
    • 한국자동차공학회논문집
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    • 제22권5호
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    • pp.91-101
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    • 2014
  • In this study, we presented a timing verification method for a passenger car diesel engine management system (EMS) using measurement-based worst-case execution time (WCET) analysis. In order to cope with AUTOSAR-compliant software architecture, a development process model is proposed. In the process model, a runnable is regarded as a test unit and its temporal behavior (i.e. maximum observed execution time, MOET) is obtained along with on-target functionality evaluation results during online unit test. Furthermore, a cost-effective framework for online unit test is proposed. Because the runtime environment layer and the standard calibration environment are utilized to implement test interface, additional resource consumption of the target processor is minimized. Using the proposed development process model and unit test framework, the MOETs of 86 runnables for diesel EMS are obtained with 213 unit test cases. Using the obtained MOETs of runnables, the WCETs of tasks are estimated and the schedulability is evaluated. From the schedulability analysis results, the problems of the initially designed schedule table is recognized and it is fixed by redesigning of the runnable mapping and task offset. Through the various test scenarios, the proposed method is validated.

비냉각 적외선 센서 어레이를 위한 CMOS 신호 검출회로 (A CMOS Readout Circuit for Uncooled Micro-Bolometer Arrays)

  • 오태환;조영재;박희원;이승훈
    • 전자공학회논문지SC
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    • 제40권1호
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    • pp.19-29
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    • 2003
  • 본 논문에서는 기존의 방법과는 달리 4 단계의 보정 기법을 적용하여 미세한 적외선 (infrared : IR) 신호를 검출해내는 비냉각 적외선 센서 어레이를 위한 CMOS 신호 검출회로를 제안한다. 제안하는 신호 검출회로는 11 비트의 A/D 변환기 (analog-to digital converter : ADC)와 7 비트의 D/A 변환기(digital to-analog converter : DAC), 그리고 자동 이득 조절 회로 (automatic gain control circuit : AGC)로 구성되며, 비냉각 센서 어레이를 동작시키는 DC 바이어스 전류 성분, 화소간의 특성 차이에 의한 변화 성분과 자체 발열 (self-heating)에 의한 변화 성분을 포함하는 적외선 센서 어레이의 출력 신호로부터 미세한 적외선 신호 성분만을 선택적으로 얻어낸다. 제안하는 A/D 변환기에서는 병합 캐패시터 스위칭(merged-capacitor switching : MCS) 기법을 적용하여 면적 및 전력 소모를 최소화하였으며, D/A 변환기에서는 출력단에 높은 선형성을 가지는 전류 반복기를 사용하여 화소간의 특성 차이에 의한 변화 성분과 자체 발열에 의한 변화 성분을 보정할 수 있도록 하였다. 시제품으로 제작된 신호 검출회로는 1.2 um double-poly double-metal CMOS 공정을 사용하였으며, 4.5 V 전원전압에서 110 ㎽의 전력을 소모한다. 제작된 시제품으로부터 측정된 검출회로의 differential nonlinearity (DNL)와 integral nonlinearity (INL)는 A/D 변환기의 경우 11 비트의 해상도에서 ±0.9 LSB와 ±1.8 LSB이며, D/A 변환기의 경우 7비트의 해상도에서 ±0.1 LSB와 ±0.1 LSB이다.

한정된 O-D조사자료를 이용한 주 전체의 트럭교통예측방법 개발 (DEVELOPMENT OF STATEWIDE TRUCK TRAFFIC FORECASTING METHOD BY USING LIMITED O-D SURVEY DATA)

  • 박만배
    • 대한교통학회:학술대회논문집
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    • 대한교통학회 1995년도 제27회 학술발표회
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    • pp.101-113
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    • 1995
  • The objective of this research is to test the feasibility of developing a statewide truck traffic forecasting methodology for Wisconsin by using Origin-Destination surveys, traffic counts, classification counts, and other data that are routinely collected by the Wisconsin Department of Transportation (WisDOT). Development of a feasible model will permit estimation of future truck traffic for every major link in the network. This will provide the basis for improved estimation of future pavement deterioration. Pavement damage rises exponentially as axle weight increases, and trucks are responsible for most of the traffic-induced damage to pavement. Consequently, forecasts of truck traffic are critical to pavement management systems. The pavement Management Decision Supporting System (PMDSS) prepared by WisDOT in May 1990 combines pavement inventory and performance data with a knowledge base consisting of rules for evaluation, problem identification and rehabilitation recommendation. Without a r.easonable truck traffic forecasting methodology, PMDSS is not able to project pavement performance trends in order to make assessment and recommendations in the future years. However, none of WisDOT's existing forecasting methodologies has been designed specifically for predicting truck movements on a statewide highway network. For this research, the Origin-Destination survey data avaiiable from WisDOT, including two stateline areas, one county, and five cities, are analyzed and the zone-to'||'&'||'not;zone truck trip tables are developed. The resulting Origin-Destination Trip Length Frequency (00 TLF) distributions by trip type are applied to the Gravity Model (GM) for comparison with comparable TLFs from the GM. The gravity model is calibrated to obtain friction factor curves for the three trip types, Internal-Internal (I-I), Internal-External (I-E), and External-External (E-E). ~oth "macro-scale" calibration and "micro-scale" calibration are performed. The comparison of the statewide GM TLF with the 00 TLF for the macro-scale calibration does not provide suitable results because the available 00 survey data do not represent an unbiased sample of statewide truck trips. For the "micro-scale" calibration, "partial" GM trip tables that correspond to the 00 survey trip tables are extracted from the full statewide GM trip table. These "partial" GM trip tables are then merged and a partial GM TLF is created. The GM friction factor curves are adjusted until the partial GM TLF matches the 00 TLF. Three friction factor curves, one for each trip type, resulting from the micro-scale calibration produce a reasonable GM truck trip model. A key methodological issue for GM. calibration involves the use of multiple friction factor curves versus a single friction factor curve for each trip type in order to estimate truck trips with reasonable accuracy. A single friction factor curve for each of the three trip types was found to reproduce the 00 TLFs from the calibration data base. Given the very limited trip generation data available for this research, additional refinement of the gravity model using multiple mction factor curves for each trip type was not warranted. In the traditional urban transportation planning studies, the zonal trip productions and attractions and region-wide OD TLFs are available. However, for this research, the information available for the development .of the GM model is limited to Ground Counts (GC) and a limited set ofOD TLFs. The GM is calibrated using the limited OD data, but the OD data are not adequate to obtain good estimates of truck trip productions and attractions .. Consequently, zonal productions and attractions are estimated using zonal population as a first approximation. Then, Selected Link based (SELINK) analyses are used to adjust the productions and attractions and possibly recalibrate the GM. The SELINK adjustment process involves identifying the origins and destinations of all truck trips that are assigned to a specified "selected link" as the result of a standard traffic assignment. A link adjustment factor is computed as the ratio of the actual volume for the link (ground count) to the total assigned volume. This link adjustment factor is then applied to all of the origin and destination zones of the trips using that "selected link". Selected link based analyses are conducted by using both 16 selected links and 32 selected links. The result of SELINK analysis by u~ing 32 selected links provides the least %RMSE in the screenline volume analysis. In addition, the stability of the GM truck estimating model is preserved by using 32 selected links with three SELINK adjustments, that is, the GM remains calibrated despite substantial changes in the input productions and attractions. The coverage of zones provided by 32 selected links is satisfactory. Increasing the number of repetitions beyond four is not reasonable because the stability of GM model in reproducing the OD TLF reaches its limits. The total volume of truck traffic captured by 32 selected links is 107% of total trip productions. But more importantly, ~ELINK adjustment factors for all of the zones can be computed. Evaluation of the travel demand model resulting from the SELINK adjustments is conducted by using screenline volume analysis, functional class and route specific volume analysis, area specific volume analysis, production and attraction analysis, and Vehicle Miles of Travel (VMT) analysis. Screenline volume analysis by using four screenlines with 28 check points are used for evaluation of the adequacy of the overall model. The total trucks crossing the screenlines are compared to the ground count totals. L V/GC ratios of 0.958 by using 32 selected links and 1.001 by using 16 selected links are obtained. The %RM:SE for the four screenlines is inversely proportional to the average ground count totals by screenline .. The magnitude of %RM:SE for the four screenlines resulting from the fourth and last GM run by using 32 and 16 selected links is 22% and 31 % respectively. These results are similar to the overall %RMSE achieved for the 32 and 16 selected links themselves of 19% and 33% respectively. This implies that the SELINICanalysis results are reasonable for all sections of the state.Functional class and route specific volume analysis is possible by using the available 154 classification count check points. The truck traffic crossing the Interstate highways (ISH) with 37 check points, the US highways (USH) with 50 check points, and the State highways (STH) with 67 check points is compared to the actual ground count totals. The magnitude of the overall link volume to ground count ratio by route does not provide any specific pattern of over or underestimate. However, the %R11SE for the ISH shows the least value while that for the STH shows the largest value. This pattern is consistent with the screenline analysis and the overall relationship between %RMSE and ground count volume groups. Area specific volume analysis provides another broad statewide measure of the performance of the overall model. The truck traffic in the North area with 26 check points, the West area with 36 check points, the East area with 29 check points, and the South area with 64 check points are compared to the actual ground count totals. The four areas show similar results. No specific patterns in the L V/GC ratio by area are found. In addition, the %RMSE is computed for each of the four areas. The %RMSEs for the North, West, East, and South areas are 92%, 49%, 27%, and 35% respectively, whereas, the average ground counts are 481, 1383, 1532, and 3154 respectively. As for the screenline and volume range analyses, the %RMSE is inversely related to average link volume. 'The SELINK adjustments of productions and attractions resulted in a very substantial reduction in the total in-state zonal productions and attractions. The initial in-state zonal trip generation model can now be revised with a new trip production's trip rate (total adjusted productions/total population) and a new trip attraction's trip rate. Revised zonal production and attraction adjustment factors can then be developed that only reflect the impact of the SELINK adjustments that cause mcreases or , decreases from the revised zonal estimate of productions and attractions. Analysis of the revised production adjustment factors is conducted by plotting the factors on the state map. The east area of the state including the counties of Brown, Outagamie, Shawano, Wmnebago, Fond du Lac, Marathon shows comparatively large values of the revised adjustment factors. Overall, both small and large values of the revised adjustment factors are scattered around Wisconsin. This suggests that more independent variables beyond just 226; population are needed for the development of the heavy truck trip generation model. More independent variables including zonal employment data (office employees and manufacturing employees) by industry type, zonal private trucks 226; owned and zonal income data which are not available currently should be considered. A plot of frequency distribution of the in-state zones as a function of the revised production and attraction adjustment factors shows the overall " adjustment resulting from the SELINK analysis process. Overall, the revised SELINK adjustments show that the productions for many zones are reduced by, a factor of 0.5 to 0.8 while the productions for ~ relatively few zones are increased by factors from 1.1 to 4 with most of the factors in the 3.0 range. No obvious explanation for the frequency distribution could be found. The revised SELINK adjustments overall appear to be reasonable. The heavy truck VMT analysis is conducted by comparing the 1990 heavy truck VMT that is forecasted by the GM truck forecasting model, 2.975 billions, with the WisDOT computed data. This gives an estimate that is 18.3% less than the WisDOT computation of 3.642 billions of VMT. The WisDOT estimates are based on the sampling the link volumes for USH, 8TH, and CTH. This implies potential error in sampling the average link volume. The WisDOT estimate of heavy truck VMT cannot be tabulated by the three trip types, I-I, I-E ('||'&'||'pound;-I), and E-E. In contrast, the GM forecasting model shows that the proportion ofE-E VMT out of total VMT is 21.24%. In addition, tabulation of heavy truck VMT by route functional class shows that the proportion of truck traffic traversing the freeways and expressways is 76.5%. Only 14.1% of total freeway truck traffic is I-I trips, while 80% of total collector truck traffic is I-I trips. This implies that freeways are traversed mainly by I-E and E-E truck traffic while collectors are used mainly by I-I truck traffic. Other tabulations such as average heavy truck speed by trip type, average travel distance by trip type and the VMT distribution by trip type, route functional class and travel speed are useful information for highway planners to understand the characteristics of statewide heavy truck trip patternS. Heavy truck volumes for the target year 2010 are forecasted by using the GM truck forecasting model. Four scenarios are used. Fo~ better forecasting, ground count- based segment adjustment factors are developed and applied. ISH 90 '||'&'||' 94 and USH 41 are used as example routes. The forecasting results by using the ground count-based segment adjustment factors are satisfactory for long range planning purposes, but additional ground counts would be useful for USH 41. Sensitivity analysis provides estimates of the impacts of the alternative growth rates including information about changes in the trip types using key routes. The network'||'&'||'not;based GMcan easily model scenarios with different rates of growth in rural versus . . urban areas, small versus large cities, and in-state zones versus external stations. cities, and in-state zones versus external stations.

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